Sample Exam

Transcription

Sample Exam
LECTURE 11
Sample Exam
Math 2233.003
FIRST EXAM
10:30 — 11:20 am, October 1, 1997
Name:
1. Consider the plot below of the direction field for the differential equation y = (y − 1)(y + 1).
(a) (5 pts) Sketch the solution curve satisfying y(0) = 0.
(b) (5 pts) Suppose y(x) is a solution satisfying y(0) =
behavior of y(x) as x → ∞?
•
−2.
What can you say about the asymptotic
The solution curves are have positive slope and so are increasing for all y < −1. However, at y = −1,
the slope must be zero. Therefore, a solution satisfying y(0) = −2 will increase but asymptotically
approach the line y = −1 as x → ∞.
(c) (5 pts) Suppose y(x) is a solution satisfying y(1) = 0.5. What can you say about the asymptotic behavior
of y(x) as x → ∞?
•
The solution curves are have negative slope and so are decreasing for all −1 < y < 1. However,
at y = −1, the slope must be zero. Therefore, a solution satisfying y(0) = −2 will decrease but
asymptotically approach the line y = −1 as x → ∞.
2. (15 pts) Consider the following nonlinear first order ODE: y = y2 and suppose y(x) is the solution
satisfying y(1) = 2. Use the Euler method with n = 3 and ∆x = 0.1 to estimate y(1.3).
35
11. SAMPLE EXAM
•
36
Set
= 1
= 2
= 0.1
The slope of the solution passing throught the point (1,2) will be
x0
y0
∆x
m0
=
dy dx (1,2)
= y2 (1 2) = 22 = 4
,
Therefore we take the next point of the solution curve to be
x1 = x0 + ∆x = 1.1
y1 = y0 + m0 ∆x = 2 + (4)(0.1) = 2.4
The slope of the solution curve at this point (1.1,2.4) must then be
m1
=
so
dy dx (1.1,2.4)
= y2 (1 1 2 4) = (2.4)2 = 5.76
. , .
x2 = x1 + ∆x = 1.2
= y1 + m1 ∆x = 2.4 + (5.76)(0.1) = 2.976
Continuing, we calculate the slope at (1.2,2.976) to be
y2
m2
=
and so
dy dx (1.2,2.976)
= y2 (1 2 2 976) = (2.976)2 = 8.8566
. , .
x3 = x2 + ∆x = 1.3
y3 = y2 + m2 ∆x = 2.976 + (8.8566)(0.1) = 3.8617
So
y(1.3) = y3
= 3.8617
3. (15 pts) Consider the following nonlinear first order ODE: y = x cos(y). Write down the first four terms
of the Taylor expansion of the solution satisfying y(0) = 0 about x = 0 (i.e. the terms up to order x3 ).
•
y (x) = x cos(y)
y (x) = cos(y) − x sin(y)y (x)
y (x) = − sin(y)y(x) − sin(y)y (x) − x cos(y) (y(x))
Since y(0) = 0, we then have
y
Hence
− x sin(y)y (x)
y (0) = 0 · 1 = 0
(0) = 1 − 0 · 0 · 1 = 1
(0) = −0 · 0 − 0 · 0 − 0 · 1 · (0)2 − 0 · 0 · 1 = 0
y
2
y(x) = y(0) + y (0)x +
1 y (0)x2 + 1 y (0)x3 + · ··
2!
3!
= 21 x2 + · ··
11. SAMPLE EXAM
37
4. (20 pts) Find an explicit solution of the following (separable) initial value problem.
y(1) = 1
2x + 1 y = 0 ,
y
•
dy
y
ln |y| =
= −2xdx
dy
y
= −2xdx + C = −x2 + C
When x = 1, y = 1, so we must have
0 = ln |1| = −12 + C
or C = 1. Hence
ln |y| = −x2 + 1
or
2
y = e1 x
−
5. (15 pts) Solve the following initial value problem
2
y − y = x3
•
p ( x) = −
µ(x) = exp
y(1) = 1
,
x
2
x
g(x) = x3
p(x)dx = exp
−
1
y(x) =
µ ( x)
2dx
x
= exp [−2 ln |x|] = exp ln |x−2 | = x−2
µ(x)g(x)dx +
= x2
We now plug into the initial condition
6.
C
µ(x)
x−2 x3 dx + Cx2
1
= x4 + Cx2
2
(a) (5 pts)Show that the following equation is not exact.
dy
(3x3 y + xy2 ) + 2xy2 + x2 y
=0
dx
•
M
= 3x3 y + xy2
⇒
N
= 2xy2 + x2 y
⇒
∂M
= 3x3 + 2xy
∂y
∂N
= 2y2 + 2xy
∂x
∂N
Since ∂M
∂y = ∂x the differential equation is not exact.
(b) (5 pts) Show that µ(x, y) = x−1 y−1 is an integrating factor for the equation in Part (a).
11. SAMPLE EXAM
•
38
Multiplying the differential equation by µ(x, y) we obtain
1
3
2
2
2 dy
(3x y + xy ) + 2xy + x y
=0
xy
dx
or
2
dy
3x + y + (2y + x) = 0.
dx
For this equation
N
and so the new equation is exact
∂M
=1
∂y
∂N
=1
2y + x ⇒
∂x
= 3x2 + y
M
=
∂M
∂y
⇒
= ∂N
∂x .
(c) (10 pts) Use the integrating factor in Part (b) to find the general solution of the differential equation in
Part (a).
• Since
dy
=0
3x2 + y + (2y + x) dx
is exact there must exist an equivalent algebraic equation of the form
φ(x, y) = C
with the function φ(x, y) satisfying
∂φ
= M = 3x2 + y
∂x
∂φ
∂y
= N = 2y + x
Un-doing the partial derivatives in the two equations above yields the following two ’guesses’ for
φ(x, y).
2
∂φ
∂x + H1 (y) =
3
x + y ∂x + H1 (y) = x3 + xy + H1 (y)
φ(x, y) =
∂x
φ(x, y)
=
∂φ
∂y + H2 (x) =
∂y
(2y + x)∂y + H2 (x) = y2 + xy + H2 (x)
Comparing these two expressions for φ(x, y), we see we must take H1 (y) = y2 , H2 (x) = x3 , and
φ(x, y) = x3 + xy + y2 . Hence our original differential equation is equivalent to the following algebraic
equation:
x3 + xy + y2 = C.
Applying the quadratic formula to solve for y we obtain
−
x ± x2 − 4(x3 − C )
y ( x) =
2

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